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dic microscope nikon eclipse ti-e  (Nikon)


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    Structured Review

    Nikon dic microscope nikon eclipse ti-e
    Dic Microscope Nikon Eclipse Ti E, supplied by Nikon, used in various techniques. Bioz Stars score: 90/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
    https://www.bioz.com/product/dic+microscope+nikon+eclipse+ti-e/10__1016_slash_j__bioactmat__2025__04__015-284-21-23
    Average 90 stars, based on 1 article reviews
    dic microscope nikon eclipse ti-e - by Bioz Stars, 2026-09
    90/100 stars

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    Related Articles

    Microscopy:

    Article Title: Application of bioactive materials primary cilia as a novel delivery vehicle
    Article Snippet: Primary cilia are hair-like structured cell organelles functioning as cellular antennae with chemosensory and mechanosensory roles.. Dysfunction of cilia results in ciliopathies, including renovascular diseases (polycystic kidneys, hypertension, aneurysm), mental impedances (Alzheimer’s disease, Parkinson’s disease, dementia), metabolic diseases (obesity, developmental skeleton defects), blindness, and so on.. With a diameter of 150 nm, cilia can be cleaved, released and circulated in the body as injury biomarkers.

    Inverted Microscopy:

    Article Title: Application of bioactive materials primary cilia as a novel delivery vehicle
    Article Snippet: Primary cilia are hair-like structured cell organelles functioning as cellular antennae with chemosensory and mechanosensory roles.. Dysfunction of cilia results in ciliopathies, including renovascular diseases (polycystic kidneys, hypertension, aneurysm), mental impedances (Alzheimer’s disease, Parkinson’s disease, dementia), metabolic diseases (obesity, developmental skeleton defects), blindness, and so on.. With a diameter of 150 nm, cilia can be cleaved, released and circulated in the body as injury biomarkers.



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    Nikon dic microscope nikon eclipse ti-e
    Dic Microscope Nikon Eclipse Ti E, supplied by Nikon, used in various techniques. Bioz Stars score: 90/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
    https://www.bioz.com/product/dic+microscope+nikon+eclipse+ti-e/10__1016_slash_j__bioactmat__2025__04__015-284-21-23
    Average 90 stars, based on 1 article reviews
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    Nikon dic images nikon eclipse ti-e inverted microscope
    Design and 3D fabrication of biodegradable hydrogel microrobotic swimmers. (A) Empirical design of the double-helical microswimmer. (B) Computational fluid dynamics simulation for Reynolds number with respect to L /λ and D / R ratios, calculated for water at room temperature. The maximum forward swimming velocity was found with L /λ = 2.5 and D / R = 0.5 for the given design space sweep study. (C) Alignment of the magnetic nanoparticles that defines an easy axis normal to the helical axis, thereby allowing rotational motion under rotating magnetic fields. (D) 3D fabrication of the microswimmers using two-photon polymerization. During the fabrication process, a continuous magnetic field was applied to keep the nanoparticles aligned. (E) <t>Optical</t> <t>microscope</t> differential interference contrast <t>(DIC)</t> image of a microswimmer array. (F) Energy-dispersive X-ray spectroscopy mapping of iron confirming the homogeneous embedding of the iron oxide magnetic nanoparticles inside the microswimmer body.
    Dic Images Nikon Eclipse Ti E Inverted Microscope, supplied by Nikon, used in various techniques. Bioz Stars score: 90/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
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    Nikon differential interference contrast (dic) inverted microscope nikon eclipse ti- e
    Design and 3D fabrication of biodegradable hydrogel microrobotic swimmers. (A) Empirical design of the double-helical microswimmer. (B) Computational fluid dynamics simulation for Reynolds number with respect to L /λ and D / R ratios, calculated for water at room temperature. The maximum forward swimming velocity was found with L /λ = 2.5 and D / R = 0.5 for the given design space sweep study. (C) Alignment of the magnetic nanoparticles that defines an easy axis normal to the helical axis, thereby allowing rotational motion under rotating magnetic fields. (D) 3D fabrication of the microswimmers using two-photon polymerization. During the fabrication process, a continuous magnetic field was applied to keep the nanoparticles aligned. (E) <t>Optical</t> <t>microscope</t> differential interference contrast <t>(DIC)</t> image of a microswimmer array. (F) Energy-dispersive X-ray spectroscopy mapping of iron confirming the homogeneous embedding of the iron oxide magnetic nanoparticles inside the microswimmer body.
    Differential Interference Contrast (Dic) Inverted Microscope Nikon Eclipse Ti E, supplied by Nikon, used in various techniques. Bioz Stars score: 90/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
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    Image Search Results


    Design and 3D fabrication of biodegradable hydrogel microrobotic swimmers. (A) Empirical design of the double-helical microswimmer. (B) Computational fluid dynamics simulation for Reynolds number with respect to L /λ and D / R ratios, calculated for water at room temperature. The maximum forward swimming velocity was found with L /λ = 2.5 and D / R = 0.5 for the given design space sweep study. (C) Alignment of the magnetic nanoparticles that defines an easy axis normal to the helical axis, thereby allowing rotational motion under rotating magnetic fields. (D) 3D fabrication of the microswimmers using two-photon polymerization. During the fabrication process, a continuous magnetic field was applied to keep the nanoparticles aligned. (E) Optical microscope differential interference contrast (DIC) image of a microswimmer array. (F) Energy-dispersive X-ray spectroscopy mapping of iron confirming the homogeneous embedding of the iron oxide magnetic nanoparticles inside the microswimmer body.

    Journal: ACS Nano

    Article Title: 3D-Printed Biodegradable Microswimmer for Theranostic Cargo Delivery and Release

    doi: 10.1021/acsnano.8b09233

    Figure Lengend Snippet: Design and 3D fabrication of biodegradable hydrogel microrobotic swimmers. (A) Empirical design of the double-helical microswimmer. (B) Computational fluid dynamics simulation for Reynolds number with respect to L /λ and D / R ratios, calculated for water at room temperature. The maximum forward swimming velocity was found with L /λ = 2.5 and D / R = 0.5 for the given design space sweep study. (C) Alignment of the magnetic nanoparticles that defines an easy axis normal to the helical axis, thereby allowing rotational motion under rotating magnetic fields. (D) 3D fabrication of the microswimmers using two-photon polymerization. During the fabrication process, a continuous magnetic field was applied to keep the nanoparticles aligned. (E) Optical microscope differential interference contrast (DIC) image of a microswimmer array. (F) Energy-dispersive X-ray spectroscopy mapping of iron confirming the homogeneous embedding of the iron oxide magnetic nanoparticles inside the microswimmer body.

    Article Snippet: DIC images were taken with Nikon Eclipse Ti-E inverted microscope.

    Techniques: Microscopy, Spectroscopy

    Biodegradation of the hydrogel microswimmers by the MMP-2 enzyme. (A) DIC images of a degrading microswimmer array in the presence of 4 μg mL –1 enzyme. Degradation starts with the rapid swell of the microswimmers followed by the collapse of the entire network. (B) Enzymatic degradation of the microswimmers. At the physiological level, MMP-2 degrades the microswimmers within 118 h. Enzymatic susceptibility introduces a concept of operational lifetime, defined as the time period that microswimmer preserves its original morphology for proper navigation. The operational lifetime is a function of the enzyme concentration in the microenvironment. Data are presented as mean ± standard deviation. (C) Live (green) and dead (red) SKBR3 breast cancer cells treated with the degradation products of the microswimmers. (D) Quantitative analysis of the acute toxicity induced by the degradation products of the microswimmers in comparison with 5 μg mL –1 iron oxide nanoparticles and untreated cells. Data are presented as mean ± standard deviation.

    Journal: ACS Nano

    Article Title: 3D-Printed Biodegradable Microswimmer for Theranostic Cargo Delivery and Release

    doi: 10.1021/acsnano.8b09233

    Figure Lengend Snippet: Biodegradation of the hydrogel microswimmers by the MMP-2 enzyme. (A) DIC images of a degrading microswimmer array in the presence of 4 μg mL –1 enzyme. Degradation starts with the rapid swell of the microswimmers followed by the collapse of the entire network. (B) Enzymatic degradation of the microswimmers. At the physiological level, MMP-2 degrades the microswimmers within 118 h. Enzymatic susceptibility introduces a concept of operational lifetime, defined as the time period that microswimmer preserves its original morphology for proper navigation. The operational lifetime is a function of the enzyme concentration in the microenvironment. Data are presented as mean ± standard deviation. (C) Live (green) and dead (red) SKBR3 breast cancer cells treated with the degradation products of the microswimmers. (D) Quantitative analysis of the acute toxicity induced by the degradation products of the microswimmers in comparison with 5 μg mL –1 iron oxide nanoparticles and untreated cells. Data are presented as mean ± standard deviation.

    Article Snippet: DIC images were taken with Nikon Eclipse Ti-E inverted microscope.

    Techniques: Concentration Assay, Standard Deviation, Comparison